Environmental arginine controls multinuclear giant cell metabolism and formation.
Julia S BrunnerLoan VulliardMelanie HofmannMarkus KielerAlexander LercherAndrea VogelMarion RussierJohanna B BrüggenthiesMartina KerndlVictoria SaferdingBirgit NiederreiterAlexandra JunzaAnnika FrauensteinCarina ScholtysekYohei MikamiKristaps KlavinsGerhard KrönkeAndreas BergthalerJohn J O'SheaThomas WeichhartRüdiger KleinJosef S SmolenPaul ChengÓscar YanesJ Formula See Text Rg MenchePeter J MurrayOmar SharifStephan BlümlGernot SchabbauerPublished in: Nature communications (2020)
Multinucleated giant cells (MGCs) are implicated in many diseases including schistosomiasis, sarcoidosis and arthritis. MGC generation is energy intensive to enforce membrane fusion and cytoplasmic expansion. Using receptor activator of nuclear factor kappa-Β ligand (RANKL) induced osteoclastogenesis to model MGC formation, here we report RANKL cellular programming requires extracellular arginine. Systemic arginine restriction improves outcome in multiple murine arthritis models and its removal induces preosteoclast metabolic quiescence, associated with impaired tricarboxylic acid (TCA) cycle function and metabolite induction. Effects of arginine deprivation on osteoclastogenesis are independent of mTORC1 activity or global transcriptional and translational inhibition. Arginine scarcity also dampens generation of IL-4 induced MGCs. Strikingly, in extracellular arginine absence, both cell types display flexibility as their formation can be restored with select arginine precursors. These data establish how environmental amino acids control the metabolic fate of polykaryons and suggest metabolic ways to manipulate MGC-associated pathologies and bone remodelling.
Keyphrases
- nuclear factor
- nitric oxide
- amino acid
- toll like receptor
- bone loss
- rheumatoid arthritis
- high glucose
- diabetic rats
- induced apoptosis
- bone mineral density
- inflammatory response
- drug induced
- endoplasmic reticulum stress
- cell therapy
- signaling pathway
- cell death
- bone marrow
- endothelial cells
- heat shock
- postmenopausal women
- stress induced
- deep learning
- cell cycle arrest